Chapter 2: Q. 26 (page 184)
Use (a) the definition of the derivative and then
(b) the definition of the derivative to find for each function f and value in Exercises 23鈥38.
26.
Short Answer
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Chapter 2: Q. 26 (page 184)
Use (a) the definition of the derivative and then
(b) the definition of the derivative to find for each function f and value in Exercises 23鈥38.
26.
.
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Use the definition of the derivative to find for each function in Exercises 34-59
In Exercises 69鈥80, determine whether or not f is continuous and/or differentiable at the given value of x. If not, determine any left or right continuity or differentiability. For the last four functions, use graphs instead of the definition of the derivative.
Find the derivatives of the functions in Exercises 21鈥46. Keep in mind that it may be convenient to do some preliminary algebra before differentiating.
Write down a rule for differentiating a composition of four functions
(a) in 鈥減rime鈥 notation and
(b) in Leibniz notation.
For each function and interval localid="1648297458718" in Exercises localid="1648297462718" , use the Intermediate Value Theorem to argue that the function must have at least one real root on localid="1648297466951" . Then apply Newton鈥檚 method to approximate that root.
localid="1648297471865"
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